EMD-31626

Single-particle
3.0 Å
EMD-31626 Deposition: 04/08/2021
Map released: 08/03/2023
Last modified: 13/11/2024
Overview 3D View Sample Experiment Validation Volume Browser Additional data Links
Overview 3D View Sample Experiment Validation Volume Browser Additional data Links

EMD-31626

Cryo EM structure of lysosomal ATPase

EMD-31626

Single-particle
3.0 Å
EMD-31626 Deposition: 04/08/2021
Map released: 08/03/2023
Last modified: 13/11/2024
Overview 3D View Sample Experiment Validation Volume Browser Additional data Links
Sample Organism: Homo sapiens
Sample: lysosomal ATPase E1p_ADP
Fitted models: 7fjp (Avg. Q-score: 0.527)

Deposition Authors: Zhang SS, Yang MJ
Cryo-EM structures and transport mechanism of human P5B type ATPase ATP13A2.
Chen X, Zhou M, Zhang S , Yin J, Zhang P, Xuan X, Wang P, Liu Z, Zhou B, Yang M
(2021) Cell Discov , 7 , 106 - 106
PUBMED: 34728622
DOI: doi:10.1038/s41421-021-00334-6
ISSN: 2056-5968
Abstract:
Polyamines are important polycations that play critical roles in mammalian cells. ATP13A2 belongs to the orphan P5B adenosine triphosphatases (ATPase) family and has been established as a lysosomal polyamine exporter to maintain the normal function of lysosomes and mitochondria. Previous studies have reported that several human neurodegenerative disorders are related to mutations in the ATP13A2 gene. However, the transport mechanism of ATP13A2 in the lysosome remains unclear. Here, we report the cryo-electron microscopy (cryo-EM) structures of three distinct intermediates of the human ATP13A2, revealing key insights into the spermine (SPM) transport cycle in the lysosome. The transmembrane domain serves as a substrate binding site and the C-terminal domain is essential for protein stability and may play a regulatory role. These findings advance our understanding of the polyamine transport mechanism, the lipid-associated regulation, and the disease-associated mutants of ATP13A2.